Glycans are one of the 4 major macromolecules essential for life and are the most abundant family of organic molecules. However, in contrast with DNA and RNA, glycan structures have no template; this results in limited tools to study this challenging macromolecule with a diversity of glycan structures. A central bottleneck in studying glycosylation in vivo is that inhibitors and complete KOs are lethal. In a forward genetic screen, we identified a viable, hypomorphic mutation at a conserved site in mannose phosphate isomerase (Mpi) that causes a multisystemic phenotype affecting RBCs, liver, stomach, intestines, skin, size, fat, and fluid balance in mice. The phenotype could be rescued with mannose. Analyses of glycopeptides in mice with this mutation showed a 500% increase in unoccupied N-glycan sites. This is equivalent to a "glycan knockdown," which would be useful for examining the role of glycans in biology and disease. Therefore, we report an in vivo tool to study global N-glycosylation deficiency with tissue-specific targeting and a rescue mechanism with mannose.
A hypomorphic Mpi mutation unlocks an in vivo tool for studying global N-glycosylation deficiency.
Mpi 功能减弱突变为研究全身 N-糖基化缺陷提供了一种体内工具
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作者:Lin Elisa B, Meregini Steve, Zhang Zhao, Roy Avishek, Argula Tandav, Mitchell James M, Israelsen William J, Ludwig Sara, Russell Jamie, Quan Jiexia, Hildebrand Sara, Nair-Gill Evan, Beutler Bruce, SoRelle Jeffrey A
| 期刊: | JCI Insight | 影响因子: | 6.100 |
| 时间: | 2025 | 起止号: | 2025 Jul 22; 10(14):e180752 |
| doi: | 10.1172/jci.insight.180752 | ||
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